Kreutzer Michiel T, Günther Axel, Jensen Klavs F
Department of Chemical Engineering, Massachusetts Institute of Technology, 25 Ames Street, Cambridge, Massachusetts 02139, USA.
Anal Chem. 2008 Mar 1;80(5):1558-67. doi: 10.1021/ac702143r. Epub 2008 Jan 30.
Hydrodynamic dispersion in microchannels can be significantly reduced by segmentation with a second immiscible phase. We address the effect of microchannel cross section on the dispersion of analytes in a segmented gas-liquid flow of alternating bubbles and liquid segments. Channels of square or nearly square cross section are considered. A significant fraction of the liquid surrounds the bubbles and wets the channel walls in the form of films or menisci. This stagnant fraction of the liquid remains when gas and liquid segments flow by, and it is connected to the liquid within the liquid segments by diffusion only and it effectively increases dispersion. We design and fabricate a microchip with integrated analyte injection and detection to investigate the effects of the influence of the stagnant liquid in segmented flow through square microchannels on the analyte bandwidth. The measured data and a corresponding model confirm the experimental trends and suggest operating conditions at which the unwanted effect of dispersion in segmented microchannel flow is minimized. Dispersion is least when the liquid flow rate is greater than the gas flow rate, and the optimum ratio of the two flow rates slightly increases with increasing bubble velocity.
通过用第二种不混溶相进行分段,可以显著降低微通道中的流体动力分散。我们研究了微通道横截面在交替气泡和液段的分段气液流中对分析物分散的影响。考虑了方形或近似方形横截面的通道。很大一部分液体围绕着气泡,并以薄膜或弯月面的形式润湿通道壁。当气体和液段流过时,这部分停滞的液体仍然存在,并且它仅通过扩散与液段内的液体相连,并且有效地增加了分散。我们设计并制造了一种集成了分析物注入和检测功能的微芯片,以研究方形微通道中分段流中停滞液体的影响对分析物带宽的影响。测量数据和相应模型证实了实验趋势,并提出了将分段微通道流中分散的不良影响降至最低的操作条件。当液体流速大于气体流速时,分散最小,并且两种流速的最佳比值随着气泡速度的增加而略有增加。